Current research projects

Image Electrochemical decontamination of electrically conducting surfaces „EDeKo II“
Image Multifunctional electronic modules for cryogenic applications
Image Ice Slurry Generation
Image Ionocaloric cooling
Image Innovative Manufacturing Technologies for Cryosorption Systems
Image Non- invasive flow measurements
Image Thermal engines
Image Test procedures for electrical components
Image Hybrid- Fluid for CO2-Sublimation Cycle
Image Testing of mobile leak detectors according to DIN EN 14624
Image Thermostatic Expansion Valves
Image Characterisation of Superconductors in Hydrogen Atmosphere
Image High Capacity Pulse Tube Cooler
Image Measurements on ceiling mounted cooling systems
Image In-situ investigation concerning the swelling behaviour of polymer materials under elevated pressures and temperatures
Image All-in-one device for freeze-drying and production of biomaterial

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Innovative Manufacturing Technologies for Cryosorption Systems

Euronorm, R&D

Sandra Tippmann

+49-351-4081-5131

Vacuum Pumps for UHV and XHV

A cryosorption system is defined as a vacuum pump that captures gas on cryogenic surfaces (gas-binding vacuum pump). Thus pressures lower than 5-12 mbar are obtainable (realisation of UHV - ultrahigh vacuum and XHV - extremely high vacuum). Cryosorption systems rely on very good heat transfer performance. This is currently being achieved with a complex, cost-intensive and risky manufacturing process. Therefore the aim of this project is to develop a new manufacturing technology that does not have this disadvantage.

 

For this purpose, thermodynamically important variables, such as sorption heat and heat transfer resistance were determined mathematically. A test sample was developed and constructed based on these results.

After completion of the design the test sample will be produced.

In the further course of the R&D project a test stand will be set up on which the test sample can be measured. These measurements will be checked and validated in a CFD simulation. With the help of the CFD model, various simulations for future cryosorption systems can be carried out. For example cooling times for different activated carbon masses or the thermal performance under different conditions for the cooling medium can be determined using this method.

Finally the sample production (functional sample) of a cryosorption system made of stainless steel with a precisely defined heat transfer behaviour takes place. The functional model is measured in relation to the cooling performance and pressure loss of the cooling medium and the results obtained will be included into the creation of a process instruction for manufacturing future cryosorption systems.


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Further Projects

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Humidifier System for High-Purity Gases

Nafion - moisture transfer

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Behavior of multiphase cryogenic fluids

experimental und numerical investigations

Image

Innovative Parahydrogen Generator Based on Magnets

Magnetic Gas Separation of the Hydrogen Isomers

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Innovative cryogenic cooling system for the recondensation / liquefaction of technical gases up to 77 K

high performance efficiency, environmental friendliness, compactness, cost-effectiveness